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EP 1 685 344 B1 |
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EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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09.03.2011 Bulletin 2011/10 |
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Date of filing: 19.11.2004 |
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International Patent Classification (IPC):
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International application number: |
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PCT/US2004/038836 |
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International publication number: |
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WO 2005/052520 (09.06.2005 Gazette 2005/23) |
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FLOW SENSOR TUBE ASSEMBLY AND METHOD FOR CONNECTING A TUBE TO A BASE MEMBER
DURCHFLUSSAUFNEHMERROHRANORDNUNG UND VERFAHREN ZUR VERBINDUNG EINES ROHRS MIT EINEM
BASISGLIED
ASSEMBLAGE DE TUBE A LA BASE D'UN DEBITMETRE ET PROCEDE CORRESPONDANT
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Designated Contracting States: |
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AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HU IE IS IT LI LU MC NL PL PT RO SE SI SK
TR |
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Priority: |
19.11.2003 US 707078
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Date of publication of application: |
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02.08.2006 Bulletin 2006/31 |
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Proprietor: EMERSON ELECTRIC CO. |
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St. Louis
Missouri 63136 (US) |
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Inventor: |
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- DILLE, Joseph, C.
Telford, PA 18969-2148 (US)
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Representative: Holmes, Matthew William et al |
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Ollila Lanoe LLP
The Coach House Wootton Park Farm
Wootton Wawen
Henley-in-Arden B95 6HJ Wootton Park Farm
Wootton Wawen
Henley-in-Arden B95 6HJ (GB) |
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References cited: :
US-A- 2 331 932 US-A- 5 253 520
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US-A- 4 768 385
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| Note: Within nine months from the publication of the mention of the grant of the European
patent, any person may give notice to the European Patent Office of opposition to
the European patent
granted. Notice of opposition shall be filed in a written reasoned statement. It shall
not be deemed to
have been filed until the opposition fee has been paid. (Art. 99(1) European Patent
Convention).
|
1. FIELD OF THE DISCLOSURE
[0001] The invention relates generally to tube connections, and more particularly, to connecting
a flow measurement tube to a base member.
2. DESCRIPTION OF RELATED ART
[0002] The measurement and control of fluid flow is extremely important in the process industries.
Many manufacturing processes require extreme accuracy and repeatability in fluid delivery,
and thus demand that the mass flow rate of process fluids be precisely measured and
controlled. Various technologies are known for measuring mass flow. For example, mass
flow measurement based on the Coriolis force effect provides a direct measurement
of mass flow. In the case of the typical Coriolis force flow sensor, a flow sensing
tube, through which fluid flow is to be established, is vibrated. Often the tube is
in the shape of one or more loops. The loop shape is such that the mass flow vector
is directed in opposite directions at different parts of the loop. The tube loops
may, for example, be "U" shaped, rectangular, triangular or "delta" shaped or coiled.
In the special case of a straight tube, there are two simultaneous angular velocity
vectors that are coincident to the anchor points of the tube while the mass flow vector
is in a single direction.
[0003] The angular velocity vector changes directions since, in a vibrating system, the
direction of rotation changes. The result is that, at any given time, the Coriolis
force is acting in opposite directions where the mass flow vectors or the angular
velocity vectors are directed in opposite directions. Since the angular velocity vector
is constantly changing due to the vibrating system, the Coriolis force is also constantly
changing. The result is a dynamic twisting motion being imposed on top of the oscillating
motion of the tube. The magnitude of twist is proportional to the mass flow for a
given angular velocity.
[0004] A thermal mass flow instrument measures flow by routing a small portion of the fluid
stream through a flow sensing tube. Heat is applied at the midpoint of the sensing
tube, with temperature sensors located on either side of the heater. Each temperature
sensor measures the temperature of the fluid at its respective location. The first
temperature sensor measures the temperature upstream of the heater. The second temperature
sensor measures the temperature downstream of the heater and reflects a temperature
corresponding to the fluid as heated by the heater. The temperature difference of
the fluid on either side of the heater is proportional to the mass flow rate.
[0005] The flow sensing tube in such flow measurement devices is typically connected to
a base member, typically at or near the inlet and outlet ends of the tube. To provide
reliable operation, the tube connections must be solid and leak-free. Typically, the
flow tube is brazed to the base member. Brazing produces a solid and leak free connection
but may have inferior corrosion resistance when compared to the tube material. Welding
is a preferred joining technique. However, known manufacturing processes and tolerances
often make it difficult to achieve satisfactory welded tube connection joints, especially
in low-flow applications, which require very small flow sensing tubes.
[0006] U.S. Pat. No. 5,253,520 discloses a parallel path Coriolis mass flow rate meter, which incorporates improved
inlet and outlet manifolds. Each manifold includes a transition piece and a tube mounting
block. Each of the tube mounting blocks is fabricated with an internal shoulder which
aligns each of the flow tubes in a parallel relationship to one another and then suitably
melts upon application of heat to maintain this relationship. The mounting blocks
and transition pieces also incorporate various mechanical configurations which facilitate
assembly of the meter and advantageously reduce the cost of the meter.
[0007] U.S. Pat. No. 4,768,385 discloses a disconnectable flow connector formed of (a) a frusto-conical taper pin
having a longitudinal bore through which the end portion of a flow tube of a mass
flow sensor is inserted and secured and (b) a connector base containing a matched
frusto-conical taper bore. The taper pin can be press-fit into the taper bore to form
a fluid flow passage having a leakage level less than about 10.sup.-9scc/sec helium.
[0009] The present invention addresses shortcomings associated with the prior art.
SUMMARY OF THE DISCLOSURE
[0010] According to one aspect of the invention there is provided a flow sensor tube assembly
comprising a base member having first and second generally opposing sides, the assembly
characterized by a nipple defined by the second side of the base member, an opening
extending through the base member and the nipple, flow sensor tube having an end received
in the opening, a filler material situated in the opening surrounding the flow sensor
tube adjacent the first side of the base member, and the flow sensor tube being welded
to the nipple. A groove may be defined in the first side of the base member surrounding
the opening forming a raised boss adjacent the opening to facilitate a brazing operation.
The nipple may be formed around the flow sensor tube so as to eliminate a gap between
the opening and the flow sensor tube.
[0011] A second opening may be provided to receive the opposite end of the flow sensor tube.
This end of the tube may be connected to the base member in the same manner as the
first end, with a filler material being situated in the second opening surrounding
the flow sensor tube adjacent the first side of the base member, and the second end
of the flow sensor tube being welded to the base member adjacent the second side of
the base member.
[0012] According to another aspect of the invention there is provided a method of attaching
a tube to a nipple formed in a base member to form a flow sensor tube assembly, the
method characterized by the steps of inserting an end of the tube into an opening
extending through the nipple, situating a filler material around the tube in the opening
adjacent a first side of the base member, and welding the tube to the nipple.
[0013] The second side of the base member may be formed to the tube to eliminate a gap between
the opening and the tube. In certain implementations, a conical nipple defined by
the base member is formed suing a clearance adjuster, or swage, to eliminate clearance
between the opening and the tube.
BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Other objects and advantages of the invention will become apparent upon reading the
following detailed description and upon reference to the drawings in which:
Figure 1 is a block diagram illustrating portions of a mass flow measurement device.
Figure 2 is an exploded perspective view of a tube assembly in accordance with aspects
of the present invention.
Figure 3 is an assembled perspective view of the tube assembly shown in figure 2.
Figure 4 is a sectional view showing portions of the tube assembly shown in Figures
2 and 3.
Figure 5 is a bottom view of the base member of the tube assembly shown in Figures
2 and 3.
Figure 6 is a sectional view conceptually illustrating a clearance adjuster and portions
of the tube assembly disclosed herein.
Figure 7 and 8 are sectional views of tube assemblies illustrating exemplary tube
positions relative to a base member.
[0015] While the invention is susceptible to various modifications and alternative forms,
specific embodiments thereof have been shown by way of example in the drawings and
are herein described in detail. It should be understood, however, that the description
herein of specific embodiments is not intended to limit the invention to the particular
forms disclosed, but on the contrary, the intention is to cover all modifications,
equivalents, and alternatives of the invention as defined by the appended claims.
DETAILED DESCRIPTION OF THE INVENTION
[0016] Illustrative embodiment of the invention are described below. In the interest of
clarity, not all features of an actual implementation are described in this specification.
It will of course be appreciated that in the development of any such actual embodiment,
numerous implementation-specific decisions must be made to achieve the developers'
specific goals, such as compliance with system-related and business-related constraints,
which will vary from one implementation to another. Moreover, it will be appreciated
that such a development effort might be complex and time-consuming, but would nevertheless
be a routine undertaking for those of ordinary skill in the art having the benefit
of this disclosure.
[0017] Figure 1 conceptually illustrates portions of a Coriolis based mass flow sensor.
For sake of simplicity, portions of the disclosure are presented as implemented in
a Coriolis mass flow measurement device, however, the present disclosure is applicable
to other devices requiring a secure, fluid-tight tube connection. For example, it
would be a routine undertaking for one skilled in the art, having the benefit of this
disclosure, to apply the concepts disclosed to other flow measurement devices, such
as a thermal mass flow measurement device.
[0018] The Coriolis mass flow sensor 10 shown in Figure 1 includes a flow sensor tube 12,
with a drive device 14 situated relative thereto so as to vibrate the tube 12. Pick-off
devices 16 are positioned relative to the tube 10 so as to measure the twist in the
tube 10 due to Coriolis force. The ends of the flow sensor tube 10 are attached to
a base member that is situated in a base housing 18 that would contain the device
inlet and outlet connections. The exemplary flow sensor tube 10 shown in Figure 1
is generally "U" shaped, though other shapes, such as delta shaped, rectangular, coiled,
or straight tubes may also be used.
[0019] Figure 2 is an exploded perspective view of an exemplary flow sensor tube assembly
100 in accordance with aspects of the present invention. The sensor tube assembly
100 includes a base member 110 and a flow sensor tube 112. The base member 110 has
openings 114 extending therethrough that receive ends of the flow sensor tube 112.
Generally, one end of the flow sensor tube 112 is the inlet and the opposite end is
the outlet, such that fluid flow can be established in the flow sensor tube 112 to
measure the flow rate. Figure 3 shows the flow sensor tube assembly 100 with the ends
of the flow sensor tube 112 received in the openings 114.
[0020] Figure 4 is a sectional view showing the ends of the flow tube 112 received in the
openings 114 in the base member 110. A filler material 120 is situated in the opening
114 surrounding the flow sensor tube 112 adjacent a first side (top side as shown
in Figure 4) of the base member 110 to attach the tube 112 to the base member adjacent
the first, or top, side of the base member 110. In exemplary embodiments, a low temperature
alloy material is used to achieve a brazed connection adjacent the top side of the
base member 110. Silver braze alloys are suitable filler material for the braze joint.
In other embodiments, solder or an adhesive such as epoxy are used for the filler
material to attach the flow sensor tube 112 adjacent the first side of the base member
110.
[0021] The flow sensor tube 112 is also connected to the base member 110 by a second joint
122 at the second side (bottom side as shown in Figure 4), where it is welded to the
base member 110. The deal joint attachment of the flow sensor tube 112 to the base
member 110 provides a secure, leak-free attachment. The weld attachment 122 provides
a fluid seal, and the brazed joint 120 provides structural attachment.
[0022] In exemplary embodiments, the opening 114 has two segments 114a and 114b defining
first and second diameters, respectively. The diameter of the first segment 114a is
greater than the second diameter 114b, such that a radial gap is formed around the
tube 112 to provide space for the filler material 120. In certain embodiments using
a braze filler material, induction heating is used to achieve the brazed joint, since
this provides adequate local heat and does not disrupt the tube 112. To facilitate
the brazing process, the top side of the base member 110 defines a circular groove
150 to create a raised boss 152 that allows placement of an induction heating tool
to achieve the brazed joint.
[0023] When welding, it is desirable to match the thickness of the two parts being welded.
The base member 110 is typically considerably thicker than the tube 112, especially
in low flow applications using a very small tube. To more closely match the thickness
of the plate to the thickness of the base member 110 to the wall of the tube 112,
a nipple 130 is formed into the bottom of the base member 110. Figure 5 is a bottom
perspective view of the base member 110 showing the nipples 130 defined by the base
member 110.
[0024] In an exemplary flow tube assembly, the base member 110 is about 0,838cm (0.330 inch)
thick, and the flow sensor tube 112 has a wall thickness of about 0.0025cm (0.001
inch). In this exemplary embodiment, the end of the nipple 130 tapers to about 0.0025cm
(0.001 inch)(same as the tube wall thickness), which is where the weld is performed.
[0025] In addition to matching the thickness of the parts being welded, it is preferable
to reduce the gap between them to about 10% of the thickness of the parts. Manufacturing
tolerances between the second segment 114b and diameter of the tube 112 may make it
difficult to achieve the intimate contact required between the flow sensor tube 112
and the base member 110 to achieve a consistent weld and a fluid-tight joint. In the
case of the exemplary embodiment cited above wherein the tube 112 has a wall thickness
0.0025cm (0.001 inch) the acceptable gap would be 0.00025cm (0.0001 inch). However,
a typical tolerance for the outside diameter of the flow sensor tube 112 would be
±0.0005cm (±0.0002 inch), which could result in an unacceptable 0.0010cm (0.0004 inch)
gap.
[0026] To achieve the intimate contact despite manufacturing tolerances, after insertion
of the tube 112 into the opening 114 the base member 110 may be formed to eliminate
the gap between the tube 112 and second segment 114a of the opening 114. As shown
in Figure 4, a portion of the second segment 114b of the opening 114 is situated in
the nipple 130. In exemplary embodiments, a clearance adjuster, or swage 140, is pressed
onto the nipple 130 with a controlled force to close any gap between the opening 114
and the flow sensor tube 112. Figure 6 conceptually illustrates a swaging process
to form the base member 110 around the tube 112 in an exemplary tube assembly. Figure
6 shows the base member 110 inverted, so that the nipple 130 formed by the bottom
side of the base member 110 is pointing upwards as viewed in the drawing. In the illustrated
embodiment, the nipple 130 is generally conical, defining a taper of about 62°. The
clearance adjuster 140 has a taper 142 of about 60° that interferes with the nipple
130 when a force is applied to the clearance adjuster 140 to swage the opening 114
around the tube 112, eliminating any clearance therebetween.
[0027] Figures 7 and 8 illustrate some different tube position/weld geometries. In Figure
7, the tube 114 is situated such that the end of the tube 114 is generally flush with
the nipple 130. In this situation, the weld would be done normal to the base member
110. In Figure 8, the tube 114 protrudes from the base member 110. In this situation,
the weld would be done at an angle.
[0028] The particular embodiments disclosed above are illustrative only, as the invention
may be modified and practiced in different but equivalent manners apparent to those
skilled in the art having the benefit of the teachings herein within the scope of
the appended claims. Furthermore, no limitations are intended to the details of construction
or design herein shown, other than as described in the claims below. Accordingly,
the projection sought herein is as set forth in the claims below.
1. A flow sensor tube assembly (100), comprising a base member (110) having first and
second generally opposing sides, the assembly characterized by
a nipple (130) defined by the second side of the base member (10);
an opening (114) extending through the base member (110) and the nipple (130);
a flow sensor tube (112) having an end received in the opening (114);
a filler material (120) situated in the opening (114) surrounding the flow sensor
tube (112) adjacent the first side of the base member; and
the flow sensor tube being welded to the nipple 130.
2. The flow sensor tube assembly of claim 1, wherein the opening has first (114a) and
second (114b) segments defining first and second diameters, respectively, the first
diameter being greater that the second diameter.
3. The flow sensor tube assembly of claim 2, wherein the filler material is situated
in the first segment of the opening surrounding the flow sensor tube.
4. The flow sensor tube assembly of claim 2, wherein the second segment of the opening
is situated at least partially in the nipple.
5. The flow sensor tube assembly of claim 1, wherein the second side of the base member
adjacent the opening is formed around the flow sensor tube so as to eliminate a gap
between the opening and the flow sensor tube.
6. The flow sensor tube assembly of claim 1, wherein the nipple is formed around the
flow sensor tube so as to eliminate a gap between the opening and the flow sensor
tube.
7. The flow sensor tube assembly of claim 1, wherein a portion of the flow sensor tube
extends from second side of the base member.
8. The flow sensor tube assembly of claim 1, further comprising:
a second opening extending through the base member;
a second end of the flow sensor tube being received in the second opening;
a filler material situated in the second opening surrounding the flow sensor tube
adjacent the first side of the base member: and
the second end of the flow sensor tube being welded to the nipple.
9. The flow sensor tube assembly of claim 1, further comprising a groove defined in the
first side of the base member surrounding the opening creating a raised boss adjacent
the opening.
10. The flow sensor tube assembly of claim 1, wherein the filler material comprises a
braze material.
11. The flow sensor tube assembly of claim 1, wherein the filler material comprises solder.
12. The flow sensor tube assembly of claim 1, wherein the filler material comprises an
epoxy.
13. A method of attaching a tube (112) to a nipple by a second side of a (130) formed
by a second side of a base member to form a flow sensor tube assembly (100) , the
method
characterized by the steps of:
inserting an end of the tube into an opening (144) extending through the base member
(110) and the nipple;
situating a filler material (120) around the tube in the opening adjacent a first
side of the base member, said first side generally opposing said second side; and
welding the tube to the nipple.
14. The method of claim 13, wherein the opening has first and second segments defining
first and second diameters, respectively, the first diameter being greater than the
second diameter, wherein situating the filler material includes situating the filler
material around the tube in the first segment of the opening;
15. The method of claim 13, further comprising swaging the second side of the base member
to the tube.
16. The method of claim 15, wherein swaging the second side of the base member includes
swaging the nipple extending from the second side of the base member to the tube.
17. The method of claim 13, wherein the tube is inserted into the opening such that a
portion of the tube extends from second side of the base member.
18. The method of claim 13, further comprising:
inserting a second end of the tube into a second opening extending through the nipple;
situating a filler material around the second end of the tube in the second opening
adjacent the first side of the base member; and
welding the second end of the tube to the nipple.
19. The method of claim 13, wherein the filler material comprises a braze material, the
method further comprising inductively heating the braze material situated in the opening.
1. Durchflusssensorröhrenbaugruppe (100), die ein Basiselement (110) mit einer ersten
und einer dieser allgemein gegenüberliegenden zweiten Seite umfasst, wobei die Baugruppe
gekennzeichnet ist durch:
einen Nippel (130), der durch die zweite Seite des Basiselements (110) definiert wird;
eine Öffnung (114), die durch das Basiselement (110) und den Nippel (130) verläuft;
eine Durchflusssensorröhre (112) mit einem in der Öffnung (114) aufgenommenen Ende;
ein Füllmaterial (120), das sich in der Öffnung (114) um die Durchflusssensorröhre
(112) neben der ersten Seite des Basiselements befindet; und
wobei die Durchflusssensorröhre mit dem Nippel (130) verschweißt ist.
2. Durchflusssensorröhrenbaugruppe nach Anspruch 1, wobei die Öffnung ein erstes (114a)
und ein zweites (114b) Segment hat, die jeweils einen ersten und einen zweiten Durchmesser
definieren, wobei der erste Durchmesser größer ist als der zweite Durchmesser.
3. Durchflusssensorröhrenbaugruppe nach Anspruch 2, wobei sich das Füllmaterial im ersten
Segment der die Durchflusssensorröhre umgebenden Öffnung befindet.
4. Durchflusssensorröhrenbaugruppe nach Anspruch 2, wobei sich das zweite Segment der
Öffnung wenigstens teilsweise in dem Nippel befindet.
5. Durchflusssensorröhrenbaugruppe nach Anspruch 1, wobei die zweite Seite des Basiselements
neben der Öffnung so um die Durchflusssensorröhre herum ausgebildet ist, dass ein
Spalt zwischen der Öffnung und der Durchflusssensorröhre eliminiert wird.
6. Durchflusssensorröhrenbaugruppe nach Anspruch 1, wobei der Nippel so um die Durchflusssensorröhre
herum ausgebildet ist, dass ein Spalt zwischen der Öffnung und der Durchflusssensorröhre
eliminiert wird.
7. Durchflusssensorröhrenbaugruppe nach Anspruch 1, wobei sich ein Abschnitt der Durchflusssensorröhrenbaugruppe
von der zweiten Seite des Basiselements erstreckt.
8. Durchflusssensorröhrenbaugruppe nach Anspruch 1, die ferner Folgendes umfasst:
eine zweite Öffnung, die durch das Basiselement verläuft;
wobei ein zweites Ende der Durchflusssensorröhre in der zweiten Öffnung aufgenommen
wird;
ein Füllmaterial, das sich in der zweiten Öffnung um die Durchflusssensorröhre neben
der ersten Seite des Basiselementes befindet; und
wobei das zweite Ende der Durchflusssensorröhre mit dem Nippel verschweißt ist.
9. Durchflusssensorröhrenbaugruppe nach Anspruch 1, die ferner eine Nut umfasst, die
in der ersten Seite des die Öffnung umgebenden Basiselements definiert ist, so dass
eine Erhebung neben der Öffnung entsteht.
10. Durchflusssensorröhrenbaugruppe nach Anspruch 1, wobei das Füllmaterial ein Hartlötmaterial
umfasst.
11. Durchflusssensorröhrenbaugruppe nach Anspruch 1, wobei das Füllmaterial ein Lötmittel
umfasst.
12. Durchflusssensorröhrenbaugruppe nach Anspruch 1, wobei das Füllmaterial ein Epoxid
umfasst.
13. Verfahren zum Anbringen einer Röhre (112) an einem Nippel (130), der von einer zweiten
Seite eines Basiselementes gebildet wird, zum Bilden einer Durchflusssensorröhrenbaugruppe
(100), wobei das Verfahren durch die folgenden Schritte
gekennzeichnet ist:
Einführen eines Endes der Röhre in eine Öffnung (114), die durch das Basiselement
(110) und den Nippel verläuft;
Platzieren eines Füllmaterials (120) um die Röhre in der Öffnung neben einer ersten
Seite des Basiselements, wobei die genannte erste Seite der genannten zweiten Seite
allgemein gegenüber liegt; und
Verschweißen der Röhre mit dem Nippel.
14. Verfahren nach Anspruch 13, wobei die Öffnung ein erstes und ein zweites Segment hat,
die jeweils einen ersten und einen zweiten Durchmesser definieren, wobei der erste
Durchmesser größer ist als der zweite Durchmesser, wobei das Platzieren des Füllmaterials
das Platzieren des Füllmaterials um die Röhre in dem ersten Segment der Öffnung beinhaltet.
15. Verfahren nach Anspruch 13, das ferner das Pressen der zweiten Seite des Basiselementes
auf die Röhre beinhaltet.
16. Verfahren nach Anspruch 15, wobei das Pressen der zweiten Seite des Basiselements
das Pressen des von der zweiten Seite des Basiselements verlaufenden Nippels auf die
Röhre beinhaltet.
17. Verfahren nach Anspruch 13, wobei die Röhre so in die Öffnung eingeführt wird, dass
sich ein Abschnitt der Röhre von der zweiten Seite des Basiselementes erstreckt.
18. Verfahren nach Anspruch 13, das ferner Folgendes beinhaltet:
Einführen eines zweiten Endes der Röhre in eine zweite durch den Nippel verlaufende
Öffnung;
Platzieren eines Füllmaterials um das zweite Ende der Röhre in der zweiten Öffnung
neben der ersten Seite des Basiselements; und
Verschweißen des zweiten Endes der Röhre mit dem Nippel.
19. Verfahren nach Anspruch 13, wobei das füllmaterial ein Hartlötmaterial umfasst, wobei
das Verfahren ferner das induktive Erhitzen des in der Öffnung befindlichen Hartlötmaterials
beinhaltet.
1. Un ensemble tube capteur d'écoulement (100), comprenant un membre base (110) ayant
des premier et deuxième côtés généralement opposés, l'ensemble
caractérisé par :
un mamelon (130) défini par le deuxième côté du membre base (110);
une ouverture (114) s'étendant à travers le membre base (110) et le mamelon (130)
;
un tube capteur d'écoulement (112) ayant une extrémité reçue dans l'ouverture (114);
une matière de remplissage (120) située dans l'ouverture (114) entourant le tube capteur
d'écoulement (112) au droit du premier côté du membre base ; et
le tube capteur d'écoulement étant soudé au mamelon (130).
2. L'ensemble tube capteur d'écoulement de la revendication 1, dans quoi l'ouverture
a des premier (114a) et deuxième (114b) segments définissant des premier et deuxième
diamètres, respectivement, le premier diamètre étant plus grand que le deuxième diamètre.
3. L'ensemble tube capteur d'écoulement de la revendication 2, dans quoi la matière de
remplissage est située dans le premier segment de l'ouverture entourant le tube capteur
d'écoulement.
4. L'ensemble tube capteur d'écoulement de la revendication 2, dans quoi le deuxième
segment de l'ouverture est situé au moins partiellement dans le mamelon.
5. L'ensemble tube capteur d'écoulement de la revendication 1, dans quoi le deuxième
côté du membre base au droit de l'ouverture est formé autour du tube capteur d'écoulement
de façon à éliminer un espace entre l'ouverture et le tube capteur d'écoulement.
6. L'ensemble tube capteur d'écoulement de la revendication 1, dans quoi le mamelon est
formé autour du tube capteur d'écoulement de façon à éliminer un espace entre l'ouverture
et le tube capteur d'écoulement.
7. L'ensemble tube capteur d'écoulement de la revendication 1, dans quoi une portion
du tube capteur d'écoulement s'étend à partir du deuxième côté du membre base.
8. L'ensemble tube capteur d'écoulement de la revendication 1, comprenant encore :
une deuxième ouverture s'étendant à travers le membre base;
une deuxième extrémité du tube capteur d'écoulement étant reçue dans la deuxième ouverture
;
une matière de remplissage située dans la deuxième ouverture entourant le tube capteur
d'écoulement au droit du premier côté du membre base ; et
la deuxième extrémité du tube capteur d'écoulement étant soudée au mamelon.
9. L'ensemble tube capteur d'écoulement de la revendication 1, comprenant encore une
rainure définie dans le premier côté du membre base entourant l'ouverture créant un
bossage surélevé au droit de l'ouverture.
10. L'ensemble tube capteur d'écoulement de la revendication 1, dans quoi la matière de
remplissage comprend une matière de brasage.
11. L'ensemble tube capteur d'écoulement de la revendication 1, dans quoi la matière de
remplissage comprend de la soudure.
12. L'ensemble tube capteur d'écoulement de la revendication 1, dans quoi la matière de
remplissage comprend un époxy.
13. Une méthode d'attachement d'un tube (112) à un mamelon (130) formé par un deuxième
côté d'un membre base pour former un ensemble tube capteur d'écoulement (100), la
méthode
caractérisée par les étapes suivantes :
l'insertion d'une extrémité du tube dans une ouverture (114) s'étendant à travers
le membre base (110) et le mamelon;
la mise en place d'une matière de remplissage (120) autour du tube dans l'ouverture
au droit d'un premier côté du membre base, ledit premier côté généralement opposé
audit deuxième côté ; et
le soudage du tube au mamelon.
14. La méthode de la revendication 13, dans quoi l'ouverture a des premier et deuxième
segments définissant des premier et deuxième diamètres, respectivement, le premier
diamètre étant plus grand que le deuxième diamètre, dans quoi la mise en place de
la matière de remplissage comporte la mise en place de la matière de remplissage autour
du tube dans le premier segment de l'ouverture.
15. La méthode de la revendication 13, comprenant encore l'estampage du deuxième côté
du membre base au tube.
16. La méthode de la revendication 15, dans quoi l'estampage du deuxième côté du membre
base comporte l'estampage du mamelon s'étendant à partir du deuxième côté du membre
base au tube.
17. La méthode de la revendication 13, dans quoi le tube est inséré dans l'ouverture de
telle façon qu'une portion du tube s'étend à partir du deuxième côté du membre base.
18. La méthode de la revendication 13, comprenant encore :
l'insertion d'une deuxième extrémité du tube dans une deuxième ouverture s'étendant
à travers le mamelon;
la mise en place d'une matière de remplissage autour de la deuxième extrémité du tube
dans la deuxième ouverture au droit du premier côté du membre base ; et
le soudage de la deuxième extrémité du tube au mamelon.
19. La méthode de la revendication 13, dans quoi la matière de remplissage comprend une
matière de brasage, la méthode comprenant encore le chauffage inductif de la matière
de brasage mise en place dans l'ouverture.
REFERENCES CITED IN THE DESCRIPTION
This list of references cited by the applicant is for the reader's convenience only.
It does not form part of the European patent document. Even though great care has
been taken in compiling the references, errors or omissions cannot be excluded and
the EPO disclaims all liability in this regard.
Patent documents cited in the description